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प्रश्न
Show that `|(0,ab^2,ac^2),(a^2b,0,bc^2),(a^2c,b^2c,0)| = 2a^3b^3c^3`
उत्तर
LHS = `|(0,ab^2,ac^2),(a^2b,0,bc^2),(a^2c,b^2c,0)|`
Taking a2, b2 and c2 common from C1, C2 and C3 respectively we get,
LHS = `a^2b^2c^2 |(0,a,a),(b,0,b),(c,c,0)|`
Again taking a,b,c common from R1, R2 and R3 respectively we get,
LHS = `a^3b^3c^3 |(0,1,1),(1,0,1),(1,1,0)|`
Expanding along R1 we get
LHS = `a^3b^3c^3 [0|(0,1),(1,0)| - |(1,1),(1,0)| + 1|(1,0),(1,1)|]`
= a3b3c3 [- 1(0 - 1) + 1 (1 - 0)]
= a3b3c3 (1 + 1)
= 2a3b3c3 = RHS.
Hence proved.
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